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Fracture analysis of multi-osteon cortical bone using XFEM
Ashraf Idkaidek
,
Seid Koric
,
Iwona Jasiuk
National Center for Supercomputing Applications (NCSA)
Mechanical Science and Engineering
Bioengineering
Aerospace Engineering
Beckman Institute for Advanced Science and Technology
Carl R. Woese Institute for Genomic Biology
Biomedical and Translational Sciences
Civil and Environmental Engineering
Center for the Study of Global Gender Equity
Research output
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peer-review
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Keyphrases
Cortical Bone
100%
Osteon
100%
Fracture Analysis
100%
Mesh Density
75%
Finite Element Model
50%
Result Accuracy
50%
Element Type
50%
Bone Samples
25%
Fracture Mechanics
25%
Mechanical Properties
25%
Microstructural Characteristics
25%
Microscopic Image
25%
Damage Evolution
25%
Linear Elastic
25%
Fine Mesh
25%
Crack Path
25%
Tibia
25%
Linear Elastic Fracture Mechanics
25%
Crack Propagation Rate
25%
Extended Finite Element Method
25%
70 Years Old
25%
Human Males
25%
Male Donor
25%
Cohesive Segment
25%
Cortical Bone Structure
25%
Damage Boundary
25%
Engineering
Finite Element Modeling
100%
Fracture Analysis
100%
Element Type
100%
Microstructural Feature
50%
Damage Evolution
50%
Fine Mesh
50%
Crack Propagation Speed
50%
Linear Elastic Fracture Mechanic Approach
50%
Crack Propagation Path
50%
Finite Element Analysis
50%
Boundary Condition
50%
Material Science
Density
100%
Extended Finite Element Method
100%
Finite Element Modeling
66%
Crack Propagation
33%
Damage Evolution
33%
Method in Fracture Mechanics
33%
Linear Elastic Fracture
33%